lim(x→+∞)[√(x²-x+1)-ax+b]=0,求a,b的值
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lim(x->手拆+∞)[√(x^2-x+1) -ax+b] =0
let
y=1/x
lim(x->+∞)[√物桥(x^2-x+1) -ax+b] =0
lim(y->0)[ (1/y)[ √(y^2-y+1) -a] +b] =0
y->0
√毕蚂枣(y^2-y+1)
=√[1+(-y+y^2)]
~ 1 + (1/2)(-y+ y^2)
~ 1 - (1/2)y
(1/y)[ √(y^2-y+1) -a] +b
~(1/y)[ (1-a) - (1/2)y ] +b
=(1/y)(1-a) +(b- 1/2)
=>
1-a =0 and b-1/2=0
a=1 and b=1/2
let
y=1/x
lim(x->+∞)[√物桥(x^2-x+1) -ax+b] =0
lim(y->0)[ (1/y)[ √(y^2-y+1) -a] +b] =0
y->0
√毕蚂枣(y^2-y+1)
=√[1+(-y+y^2)]
~ 1 + (1/2)(-y+ y^2)
~ 1 - (1/2)y
(1/y)[ √(y^2-y+1) -a] +b
~(1/y)[ (1-a) - (1/2)y ] +b
=(1/y)(1-a) +(b- 1/2)
=>
1-a =0 and b-1/2=0
a=1 and b=1/2
更多追问追答
追问
=√[1+(-y+y^2)]
~ 1 + (1/2)(-y+ y^2)
~ 1 - (1/2)y
这个是怎么出来的
追答
在等价无穷小, 考虑 第一个出现的最低价
√(1+x) ~ 1+ (1/2)x
√[1+(-y+y^2)]
~ 1 + (1/2)(-y+ y^2)
~ 1 -(1/2)y
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